US6993624B2 - Method and apparatus for selecting enqueued data access operations for execution in a disk drive data storage device - Google Patents
Method and apparatus for selecting enqueued data access operations for execution in a disk drive data storage device Download PDFInfo
- Publication number
- US6993624B2 US6993624B2 US10/285,256 US28525602A US6993624B2 US 6993624 B2 US6993624 B2 US 6993624B2 US 28525602 A US28525602 A US 28525602A US 6993624 B2 US6993624 B2 US 6993624B2
- Authority
- US
- United States
- Prior art keywords
- seek
- time
- access
- disk drive
- access operation
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Expired - Fee Related, expires
Links
- 238000013500 data storage Methods 0.000 title claims description 26
- 238000000034 method Methods 0.000 title claims description 24
- 238000004422 calculation algorithm Methods 0.000 claims abstract description 23
- 230000020347 spindle assembly Effects 0.000 claims 2
- 238000003860 storage Methods 0.000 description 12
- 230000015654 memory Effects 0.000 description 11
- 238000013461 design Methods 0.000 description 10
- 238000005516 engineering process Methods 0.000 description 6
- 239000000725 suspension Substances 0.000 description 6
- 238000010586 diagram Methods 0.000 description 5
- 230000008569 process Effects 0.000 description 5
- 230000001419 dependent effect Effects 0.000 description 4
- 239000010410 layer Substances 0.000 description 4
- 238000004519 manufacturing process Methods 0.000 description 4
- 239000000758 substrate Substances 0.000 description 4
- 230000006872 improvement Effects 0.000 description 3
- 230000001939 inductive effect Effects 0.000 description 3
- 239000000463 material Substances 0.000 description 3
- 230000003068 static effect Effects 0.000 description 3
- 230000000712 assembly Effects 0.000 description 2
- 238000000429 assembly Methods 0.000 description 2
- 239000000919 ceramic Substances 0.000 description 2
- 238000004891 communication Methods 0.000 description 2
- 238000011161 development Methods 0.000 description 2
- 230000006870 function Effects 0.000 description 2
- 230000004044 response Effects 0.000 description 2
- 239000007787 solid Substances 0.000 description 2
- 238000012360 testing method Methods 0.000 description 2
- 241000549194 Euonymus europaeus Species 0.000 description 1
- 238000007476 Maximum Likelihood Methods 0.000 description 1
- XAGFODPZIPBFFR-UHFFFAOYSA-N aluminium Chemical compound [Al] XAGFODPZIPBFFR-UHFFFAOYSA-N 0.000 description 1
- 229910052782 aluminium Inorganic materials 0.000 description 1
- 230000006399 behavior Effects 0.000 description 1
- 230000008901 benefit Effects 0.000 description 1
- 230000005540 biological transmission Effects 0.000 description 1
- 238000004364 calculation method Methods 0.000 description 1
- 230000008859 change Effects 0.000 description 1
- 230000001427 coherent effect Effects 0.000 description 1
- 238000009795 derivation Methods 0.000 description 1
- 238000009826 distribution Methods 0.000 description 1
- 230000009977 dual effect Effects 0.000 description 1
- 238000007667 floating Methods 0.000 description 1
- 239000011521 glass Substances 0.000 description 1
- 239000000314 lubricant Substances 0.000 description 1
- 238000013507 mapping Methods 0.000 description 1
- 238000005259 measurement Methods 0.000 description 1
- 230000008520 organization Effects 0.000 description 1
- 230000000737 periodic effect Effects 0.000 description 1
- 239000004033 plastic Substances 0.000 description 1
- 238000012545 processing Methods 0.000 description 1
- 239000011241 protective layer Substances 0.000 description 1
- 238000011084 recovery Methods 0.000 description 1
- 230000003252 repetitive effect Effects 0.000 description 1
- 238000010187 selection method Methods 0.000 description 1
- 239000004065 semiconductor Substances 0.000 description 1
- 238000009987 spinning Methods 0.000 description 1
- 239000010409 thin film Substances 0.000 description 1
- 230000003936 working memory Effects 0.000 description 1
Images
Classifications
-
- G—PHYSICS
- G11—INFORMATION STORAGE
- G11B—INFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
- G11B5/00—Recording by magnetisation or demagnetisation of a record carrier; Reproducing by magnetic means; Record carriers therefor
- G11B5/48—Disposition or mounting of heads or head supports relative to record carriers ; arrangements of heads, e.g. for scanning the record carrier to increase the relative speed
- G11B5/54—Disposition or mounting of heads or head supports relative to record carriers ; arrangements of heads, e.g. for scanning the record carrier to increase the relative speed with provision for moving the head into or out of its operative position or across tracks
- G11B5/55—Track change, selection or acquisition by displacement of the head
- G11B5/5521—Track change, selection or acquisition by displacement of the head across disk tracks
- G11B5/5526—Control therefor; circuits, track configurations or relative disposition of servo-information transducers and servo-information tracks for control thereof
- G11B5/553—Details
- G11B5/5547—"Seek" control and circuits therefor
Definitions
- the present invention relates to rotating disk data storage devices, and in particular, to algorithms used for selecting the order of execution of multiple enqueued data access operations in a disk data storage device.
- a disk drive typically contains data recorded in multiple sectors located on concentric tracks on the surface of one or more flat disks, which rotate at a constant speed.
- a moveable actuator positions a transducer adjacent a desired data track.
- the drive then waits until the disk rotates to an angular position in which the desired data sector is directly adjacent the transducer.
- the time required for the disk drive to execute any given data access operation therefore includes the time required to move the actuator from its current position to the desired track position (referred to as a seek) and the time required to wait until the disk rotates to the desired angular position (referred to as latency).
- the execution time also includes the time required to actually read or write the data once the actuator is properly positioned, but experience has shown that for many operating environments, the amount of data accessed in each operation is relatively small, and that the seek and latency times are more significant than the time required to read or write the data.
- Performance may be measured as the average number of data access operations per unit time, which depends on the average seek time and average latency time. Seek time can be reduced by designing faster, more powerful actuators and latency can be reduced by spinning the disk at a higher velocity, but there are design constraints which impose practical limits to the improvements that can be obtained by these means.
- the seek time and latency time for a given data access operation are not absolute, but are dependent, among other things, on the current position of the actuator (which affects the length of the seek) and current angular position of the disk (which affects latency).
- multiple data access operations are enqueued in an internal command buffer in the disk drive.
- By intelligently selecting the order of execution of these data access operations it is possible to choose operations such that the average seek and access times are reduced.
- the actuator speed and other characteristics are not changed, the average seek time is reduced because operations are ordered such that the average length of the seek is reduced.
- the rotational speed of the disk is not changed, the average latency is reduced because operations are ordered such that, after completing the seek, the average angle of rotation of the disk until reaching the desired data is reduced.
- these algorithms estimate, for each of multiple enqueued data access operations, the amount of time required for seek and latency from the actuator position at the end of an Nth access operation to the beginning of the enqueued data access operation, and select one of the enqueued data access operations for execution as the (N+1)th operation on the basis of these estimates.
- Optimal performance of the ordering algorithm depends on the accuracy of the estimates, and in particular, the accuracy of the seek time estimate. If the seek time estimate is too low, the algorithm may select a data access operation for which the actuator can not settle on the desired track in time, causing the actuator to wait a full revolution of the disk on the track until the desired data is available. If the seek time estimate is too high, the algorithm will reject some operations having very little latency but which could have been performed in favor of slower operations having greater latency after the seek.
- seek time is dependent on so many variables, and the required speed of disk drive operation means that any seek estimation technique must execute very rapidly.
- Conventional algorithms have estimated seek time based on the length of seek and whether the next operation is a read or a write (the write generally requiring greater track following accuracy, and hence a longer seek time before settling on the track). But other factors may affect seek time.
- Actuator speeds are not necessarily the same for all radial zones of the disk or for both seek directions. Normal manufacturing process variations in each individual head, actuator, disk, and other components mean that the seek time characteristics will not only vary from one disk drive device to another of the same model and manufacturer, but that even within a single drive, the seek time characteristics will vary from one data recording surface to another.
- seek time within any particular drive can change as the drive ages, or as the temperature varies.
- a seek profile table used by a disk controller contains multiple entries, each entry corresponding to a respective seek profile.
- a separate index table contains multiple entries, each entry corresponding to a respective combination of parameters affecting the seek profile, the number of index table entries substantially exceeding the number of profile entries.
- Each index table entry contains a single reference to a corresponding entry in the profile table which approximates the seek profile under the combination of parameters corresponding to the index table entry.
- the estimated seek time for an enqueued data access operation is obtained by accessing the index table entry corresponding to the applicable parameters of the enqueued data access operation, using the value of the index entry to determine the corresponding profile table entry, and using a probability profile from the profile table entry to estimate the access time.
- a “time-based relocation expected access time” (TREAT) algorithm is used.
- a nominal seek profile is established which sets a minimum possible seek time for each seek length. Time is expressed as an integral number of servo identifiers (SIDs) on the disk surface passing the transducer head. For any given seek operation, there will be a latency after the nominal seek.
- Each seek probability profile table entry contains multiple fields, each field corresponding to a respective probability that a data access operation can complete. The value in each respective field of the seek probability profile expresses the latency time following the nominal seek time (expressed as an integral number of SIDs) which is required to achieve the corresponding probability that a data access operation will complete within that latency time.
- SIDs servo identifiers
- index table entry there is a separate index table entry corresponding to each combination of disk head number, direction of seek, and whether the operation is a read or write operation.
- other or additional parameters such as the cylinder (track) being accessed, or the temperature of the drive.
- seek probability profile table entries are loaded with a representative set of profile entries, and each respective index table entries is dynamically mapped to a closes match in the seek probability profile table according to actual operating conditions. It would alternatively be possible to adaptively construct seek probability profile table entries using actual operating statistics, or to construct the tables using other means.
- Using a seek probability profile table and index table in accordance with the preferred embodiment makes it possible to effectively take into account variations among individual heads, seek direction, and other parameters, without the need for massive tables to store separate profiles for each possible permutation of relevant parameters, and without the need for complex calculations performed in real time, thus supporting more accurate estimates of access time for enqueued operations.
- FIG. 1 is a simplified representation of a rotating magnetic disk drive storage device, for use in accordance with the preferred embodiment of the present invention.
- FIG. 2 is a high level diagram of the major electronic elements of a disk drive storage device, according to the preferred embodiment.
- FIG. 3 illustrates the general structure of a nominal seek time table for estimating access times of enqueued operations, according to the preferred embodiment.
- FIG. 4 illustrates the general structure of an index table for estimating access times of enqueued operations, according to the preferred embodiment.
- FIG. 5 illustrates the general structure of a seek probability profile table for estimating access times of enqueued operations, according to the preferred embodiment.
- FIG. 6 illustrates the general structure of an expansion table for dynamically updating seek profile data, according to the preferred embodiment.
- FIG. 7 is a high level flow diagram illustrating the process of choosing an enqueued data access operation for execution, according to the preferred embodiment.
- FIG. 8 is a flow diagram illustrating the process of calculating an expected access time for a give data access operation, according to the preferred embodiment.
- a rotating rigid magnetic disk drive typically contains one or more smooth, flat disks which are permanently attached to a common spindle or hub. Where more than one disk is used, the disks are stacked on the spindle parallel to each other and spaced apart so that they do not touch. The disks and spindle are rotated in unison at a constant speed by a spindle motor.
- the spindle motor is typically a brushless DC motor having a multi-phase electromagnetic stator and a permanent magnet rotor.
- the different phases of the stator are sequentially driven with a drive current to rotate the rotor.
- Each disk is formed of a solid disk-shaped base or substrate, having a hole in the center for the spindle.
- the substrate is commonly aluminum, although glass, ceramic, plastic or other materials are possible.
- the substrate is coated with a thin layer of magnetizable material, and may additionally be coated with a protective layer.
- Data is recorded on the surfaces of the disk or disks in the magnetizable layer.
- minute magnetized patterns representing the data are formed in the magnetizable layer.
- the data patterns are usually arranged in circular concentric tracks, although spiral tracks are also possible.
- Each track is further divided into a number of sectors. Each sector thus forms an arc, all the sectors of a track completing a circle.
- a moveable actuator positions a transducer head adjacent the data on the surface to read or write data.
- the actuator may be likened to the tone arm of a phonograph player, and the head to the playing needle.
- the actuator usually pivots about an axis parallel to the axis of rotation of the disk(s), to position the head.
- the actuator typically includes a solid block surrounding the axis having comb-like arms extending toward the disk (which is, for this reason, sometimes referred to as the “comb”); a set of thin suspensions attached to the arms, and an electro-magnetic motor on the opposite side of the axis.
- the transducer heads are attached to the end of the suspensions opposite the comb, one head for each suspension.
- the actuator motor is typically an electro-magnetic coil mounted on the actuator comb and a set of permanent magnets mounted in a stationary position on the base or cover; when energized, the coil imparts a torque to the comb in response to the magnetic field created by the permanent magnets.
- the actuator motor rotates the actuator to position the head over a desired data track (a seek operation). Once the head is positioned over the track, the constant rotation of the disk will eventually bring the desired sector adjacent the head, and the data can then be read or written.
- the time spent waiting after completion of the seek until the desired sector is adjacent the head is known as latency, and thus the time required to commencement of a data access operation is the sum of seek and latency times.
- a servo feedback system is used to position the actuator.
- Servo fields identifying the data tracks are written on at least one disk surface, usually at the time of manufacture.
- Older disk drive designs often employed a dedicated disk surface for servo fields.
- Newer designs typically use embedded servo sectors, i.e., servo sectors are recorded at angularly spaced portions of each disk surface, the area between servo sectors being used for recording data.
- the embedded servo field typically comprises a synchronization portion, a track identifying portion for identifying a track number, and a track centering portion for locating the centerline of the track.
- the servo system When operating in a seek mode, the servo system causes the transducer to read the track identifying portion to determine the current track number, and adjusts the actuator trajectory accordingly. When operating in a track following mode, the servo system causes the transducer to read both track identifying portion and track centering portion, to determine a deviation from the desired track centerline, and the servo feedback system adjusts the position of the actuator to minimize the deviation.
- the transducer head is an aerodynamically shaped block of material (usually ceramic) on which is mounted a magnetic read/write transducer.
- the block, or slider flies above the surface of the disk at an extremely small distance (referred to as the “flyheight”) as the disk rotates.
- the close proximity to the disk surface is critical in enabling the transducer to read from or write the data patterns in the magnetizable layer.
- Many different transducer designs are used. Many current disk drive designs employ a thin-film inductive write transducer element and a separate magneto-resistive read transducer element.
- the suspensions actually apply a force to the transducer heads in a direction into the disk surface.
- the aerodynamic characteristics of the slider counter this force, and enable the slider to fly above the disk surface at the appropriate distance for data access.
- FIG. 1 is a simplified drawing of a rotating magnetic disk drive storage device 100 , for use in accordance with the preferred embodiment.
- Disk drive 100 comprises rotatable disks 101 , which are rigidly attached to hub assembly or spindle 103 , which is mounted on disk drive base or housing 104 .
- Spindle 103 and disks 101 are driven by a drive motor at a constant rotational velocity in the counter-clockwise direction, when viewed from above as shown in FIG. 1 .
- the drive motor (not visible in FIG. 1 ) is contained within hub assembly 103 .
- Data is recorded on the top and bottom surfaces 102 of each disk.
- Actuator assembly 105 is situated to one side of disks 101 .
- Actuator 105 rotates through an arc about shaft 106 parallel to the axis of the spindle, driven by electro-magnetic motor 107 , to position the transducer heads.
- a cover (not shown) mates with base 104 to enclose and protect the disk and actuator assemblies.
- Electronic modules for controlling the operation of the drive and communicating with another device, such as a host computer, are mounted on circuit card 112 .
- circuit card 112 is shown mounted outside the enclosure formed by base 104 and the cover. However, the card 112 could also be mounted inside the head/disk enclosure, or a portion of the electronics may be mounted inside the enclosure, while another portion is mounted outside the enclosure.
- a plurality of head/suspension assemblies 108 are rigidly attached to the prongs of actuator 105 .
- An aerodynamic slider 109 with a read/write transducer 110 is located at the end of each head/suspension assembly 108 adjacent disk surface 102 .
- disk drive 100 is shown with two disks having multiple disk surfaces for recording, it should be understood that the present invention could utilize a drive having a single disk, or having a larger number of disks, and that it would be possible to employ only a single disk surface of a disk for recording data.
- FIG. 2 is a high-level diagram of the major electronic elements of disk drive 100 , showing how these are connected to one another and to the transducer heads, actuator motor and spindle motor, according to the preferred embodiment.
- File controller 201 provides a data interface to a host.
- the “host” is usually a computer system such as a desktop computer system or a mainframe computer system, although it may be a special purpose device such as a personal digital assistant (PDA), a digital controller for machinery such as an automobile or robot, or any of various other digital devices.
- Controller 201 also provides general control of the operation of disk drive 100 , including such functions as command interpretation, sector mapping, power-up routines, diagnostics, error recovery, etc.
- file controller 201 selects enqueued data access operations for execution, as more particularly described herein.
- Channel electronics 202 provides modulation and demodulation function for data being written to and read from the disk surface.
- a servo controller 203 interprets servo signals obtained from reading servo fields on the disk to control the actuator motor (VCM 107); it also responds to seek signals from file controller 201 .
- Spindle motor drive circuitry 208 provides drive current to spindle motor 209 , driving the motor at a desired rotational velocity.
- Transducers 110 are attached via lead wires to write multiplexer 213 and to read multiplexer 211 , which are in turn coupled to write driver 212 and read amplifier 210 , respectively.
- Read amp 210 provides input to channel electronics 202 .
- Channel electronics provides input to write drive 212 .
- Multiplexers 211 and 213 select one of the heads for writing or reading, responsive to control signal 214 from file controller 201 .
- Magnetic patterns representing data or servo signals are sensed by magneto-resistive read elements in transducers 110 , amplified by read amp 210 , and provided to channel electronics 202 .
- Channel electronics preferably includes a partial-response maximum likelihood (PRML) filter for decoding data signals into coherent data for use by a host system.
- PRML partial-response maximum likelihood
- Positioning of transducers 110 is achieved by a servo feedback loop system comprising transducers 110 , read amp 210 , channel electronics 202 , servo controller 203 , actuator driver 207 , and actuator motor 107 .
- Transducers 110 read servo fields recorded at periodic intervals on disk surfaces 101 ; these are amplified by read amp 210 ; channel electronics 202 separate the servo fields from user data; servo controller decodes servo signals received from channel 202 to identify the track and position error, determine actuator drive current need to follow or seek according to desired parameters, and provides actuator motor drive circuitry 207 with a signal indicating the necessary drive current.
- Actuator motor drive circuitry 207 in turn provides drive current to actuator voice coil motor (VCM) 107 , positioning actuator 105 to a desired location (follow mode) or accelerating/decelerating the actuator in accordance with a desired profile (seek mode).
- VCM actuator voice coil motor
- File controller 201 preferably includes programmable processor 221 which executes a control program resident in read-only memory (ROM) 222 .
- ROM 222 is a non-volatile semiconductor random access memory, the contents of which are not lost when disk drive 100 is powered down.
- File controller also includes volatile read/write memory (RAM) 223 .
- RAM 223 is used as a temporary cache for data being read from and written to one or more of the disk surfaces, and for storing internal state variables necessary for drive operation.
- RAM 223 includes a queue 224 of pending data access operations.
- RAM 223 further includes nominal seek time table 225 , index table 226 , seek profile table 227 and expansion table 228 for use in estimating access time of pending data access operations in queue 224 , as more fully described herein.
- RAM 223 may include other data structures and storage allocations (not shown), such as a buffer for data read from a disk surface for sending to the host.
- RAM 223 may be a single or multiple modules, and may use multiple storage technologies; e.g., a portion of RAM 223 may be static RAM, while another portion is dynamic RAM. It should further be understood that the preferred allocation of ROM and RAM is dependent in part of the cost of currently available technology, and that as memory technologies develop it may be preferable to use a single monolithic memory such as non-volatile RAM, or some other combination of memory technologies. It should further be understood that various disk drive components not essential to an understanding of the present invention have been omitted from FIGS. 1 and 2 for clarity of illustration.
- RAM 223 is the general working storage used by controller 201 .
- RAM 223 preferably contains a single addressable memory space, which may be allocated by controller 201 to various uses.
- a large part of RAM 223 is typically allocated for use as a read buffer (not shown), i.e., for temporarily storing data read from a disk surface and intended for transmission to a host.
- Another portion of RAM 223 is allocated for use as data access operation queue 224 .
- Queue 224 stores pending data access operations received from a host.
- both the read buffer and queue 224 are variable-sized allocations from RAM 223 , allowing either one to use whatever memory space is available.
- queue 224 and the read buffer may be combined as a single data structure.
- RAM 223 further contains the dynamic working memory variables and data structures used by controller processor 221 to direct various aspects of control program execution not essential to an understanding of the present invention.
- Queue 224 may be organized according to any of various formats, now known or hereafter developed. Queue 224 preferably contains, for each data access operation, an indication of the type of operation (read or write), and the disk surface (head), track number and sector number of the data access operation. Queue 224 also contains some indication of ordinality of the operation, i.e., when it was received by the host relative to other operations. Ordinality may be indicated by an operation sequence number which is incremented for each requested operation, or by a timestamp, or by some other means. This indication can be used to give some preference to stale operations in the queue.
- the various tables 225 - 228 used for seek time estimation described below are in volatile RAM during drive operation, but since they are needed for optimal performance, they are stored in a non-volatile manner on a reserved area of the disk and loaded from the disk into RAM at power-up time. Tables which are dynamic should also be saved periodically to disk to preserve dynamic contents.
- FIG. 3 illustrates at a conceptual level the general structure of nominal seek time table 225 .
- Nominal seek time table 225 contains a plurality of entries, each entry containing a seek time 301 and a corresponding maximum seek length 302 .
- Nominal seek time table 225 is intended to represent, for each seek time, an ideal maximum (“nominal”) seek length corresponding to the seek time. Seek length is expressed in cylinders or tracks, the seek length being the absolute value of the difference between a track number of the actuator position before the seek and the track number of the desired data sector to which the actuator is moved in the seek operation. Seek time is expressed in SIDs.
- the ideal or nominal seek length is the best possible length of seek operation that one may expect to complete within a given seek time in disk drive 100 .
- nominal seek length for any combination of parameters which might affect seek time
- the data in nominal seek time table is preferably calibrated and updated on a dynamic basis using any of various methods, e.g., periodically collecting seek time statistics from actual seek operations during drive operation and determining table values from these statistics.
- nominal seek time table might contain static data which is calibrated to an individual disk drive at time of drive manufacture, or static data which is determined from disk drive testing during the design of a particular disk drive model, the table values being the same for all models of the disk drive.
- there are actually two separate nominal seek tables 225 one for read operations and the other for write operations. While it would be possible to use a single table for both read and write, the use of dual tables enables more efficient use of limited storage space in the profile table 227 .
- table 225 is used in the preferred embodiment to establish nominal seek time values, this might alternatively be done using a mathematical formula or by other means.
- FIG. 4 illustrates at a conceptual level the general structure of index table 226 .
- Index table 226 is intended to express, for a given set of key parameter values, a corresponding probability profile for a seek operation.
- the corresponding probability profile is actually expressed in index table 226 as an index value into seek probability profile table 227 .
- Any of various key parameter values may be used, as explained below.
- Operation type (read or write): Seek time will depend on whether the operation is a read or a write. Typically, a write operation requires that the transducer head be positioned near track center to a greater degree of accuracy than a read operation. As a result, the time to “settle” on the track toward the end of the seek is longer for a write, hence the difference in seek time.
- Head number Seek time may vary with the transducer head and corresponding disk surface for any of various reasons. There are individual variations in head flyheight, transducer gain, physical size of the transducer, quality of the recording surface, and so forth, which might affect the amount of time required to settle on a target track to the extent that it can be reliably read or written to.
- Seek direction Due to various forces on the actuator, it may move faster depending on whether the seek is in the inward direction (toward the disk center) or the outward direction (toward the outer edge of the disk).
- Radial head position The actuator may seek faster at certain radial positions or zones than at others, so that a given seek length (in number of tracks) can be accomplished in a varying amount of time, depending on the range of tracks traversed.
- a 100-track seek near the inner diameter of the disk may take more time than a 100-track seek near the outer diameter of the disk, which may in turn take more time than a 100-track seek mid-way between the ID and OD.
- Actuators are generally designed for optimum use near the middle to the OD, so seeks in this range tend to be faster, although this is not necessarily always the case.
- Speed variations may be due to physical difference in actuator speed, or to the fact that tracks are formatted in such a manner that the number of track crossings per degree of actuator rotation varies across the disk surface, or both.
- the radial head position may be expressed as the position of the target track, or the initial track, or some other measure.
- Drive Temperature Temperature affects the air viscosity, which may affect the flyheight of the head as well as the air resistance to the actuator. Temperature may also affect lubricant viscosity, mechanical frictional forces and other factors, which may influence seek times.
- index table 226 of FIG. 4 only operation type, head number, seek direction, and radial head position are used as key parameters, it being understood that temperature or other parameters could be added by expanding the index table.
- Index table 226 identifies, for each permutation of the key parameter values, an index number. This index number indexes an entry (illustrated as a row) in seek probability profile table 227 , the entry defining a probability profile for one or more sets of key parameter values.
- Index table 226 is conceptually illustrated in FIG. 4 as a 2-dimensional array for clarity.
- row 401 corresponds to the key parameter values H 1 /IN/R, meaning head number 1 (“H 1 ”), seek direction inward toward the ID (“IN”) and operation type read (“R”).
- Row 402 corresponds to the key parameter values H 2 /IN/W, meaning head number 2 , seek direction inward, and operation type write.
- Column 403 corresponds to the seek target data sector lying in a cylinder in the range R through (2R ⁇ 1), where R is some predetermined number of cylinders in each zone.
- Index table 226 illustrates a constant size cylinder range, it would also be possible to use variable size ranges, i.e., each column in table 226 representing a range having a different number of cylinders.
- Entry 404 which is at row 402 and column 403 , represents the index value for the key parameters: Head number 2 , inward seek, write operation, and target cylinder in the range R through (2R ⁇ 1).
- the value “ 7 ” in the entry represents an index into a row in seek probability profile table 227 , the corresponding row defining a probability profile for these key parameter conditions.
- FIG. 5 illustrates at a conceptual level the general structure of seek probability profile table 227 .
- Seek probability profile table contains a plurality of indexed entries (shown as rows), each of which defines a probability profile. Each entry or probability profile is associated with an index number which is used to access it, and contains a plurality of excess times over nominal (expressed as ⁇ SIDs), each excess time associated with an expected access factor (illustrated in FIG. 5 as a probability).
- An expected access factor for a given ⁇ SID expresses a probability that a seek operation will fail to complete within the ⁇ SID over nominal SID for the given length seek operation (from table 225 ), as explained in further detail below.
- FIG. 5 illustrates the expected access factors as percentages (probabilities), in fact the expected access factor may take other forms, as explained below with respect to FIG. 8 .
- index table 226 i.e., the number of permutations of the key parameters input values
- index table 226 is significantly greater than the number of probability profiles (rows) in seek probability profile table 227 .
- each row defining a probability profile in seek probability profile table 227 is typically used for multiple permutations of key parameter values.
- Such an arrangement allows one to specify a larger set of key parameter values than would be possible if a separate probability profile were required in storage for each respective permutation of key parameter values. For example, in a disk drive having 12 heads and divided into 16 concentric target cylinder range zones for purposes of key parameters, a total of 768 index entries are required in index table 226 .
- each such entry may be stored as a single byte (or possibly even a half-byte), requiring only 768 bytes of storage. However, if a separate row of a probability profile were to be required for each such entry, the storage requirements would be 768 times the number of bytes in each row. The problem is compounded if the number of key parameter values is increased. The number of rows in seek probability profile table 227 need only be sufficient to hold a representative set of probability profiles, e.g., 16.
- FIG. 6 illustrates at a conceptual level the general structure of expansion table 228 .
- Expansion table 228 is used to dynamically update the values in seek probability profile table 227 and/or in index table 226 .
- Expansion table 228 bears some similarity in structure to profile table 227 , but the excess times are preferably expressed differently.
- Expansion table 228 contains a plurality of indexed entries (shown as rows), each of which contains statistics defining a seek probability profile.
- Each entry or seek probability profile contains a plurality of excess times (expressed as ⁇ SIDs), each excess time associated with an expected access factor.
- Expansion table 228 may contain only a small number of entries (e.g., 8), it being expected that it will be used to sample sets of parameter values on a rotating basis rather than collect exhaustive statistics of all data access operations.
- FIGS. 3-6 are used for clarity of illustration, and do not necessarily represent data organization in memory.
- the tables may be organized in any manner which will associate the various values to support rapid determination of a table entry, given the corresponding defining or parameter values.
- a control program in ROM 222 executing on processor 221 causes the controller compute expected access time (EAT) and select disk operations from queue 224 .
- the key parameters of a given data access operation are used to find an index from index table 226 , and this index accesses an entry defining a probability profile in seek probability profile table 227 .
- the probability profile indicated by the index value is used in conjunction with the nominal seek time to compute an expected access time for a given data access operation.
- the expected access times of different data access operations in queue 224 are compared to choose an operation for execution and removal from the queue.
- An asynchronous process adds data access operations to queue 224 as they are received from a host.
- FIG. 7 is a high level flow diagram illustrating the process by which disk controller 201 chooses a data access operation from queue 224 for access on disk 101 .
- the controller first selects an operation from the queue using any selection method that will traverse the entire queue (step 701 ).
- the expected access time of the operation is then computed.
- the step of computing expected access time is represented at a high level in FIG. 7 as step 702 , and shown in greater detail in FIG. 8 .
- disk controller determines the latency (in SIDs) and the seek distance (in cylinders) for the selected data access operation by comparing its location with that of the currently executing data access operation (step 801 ).
- the latency is the number of SIDs between the end of the currently executing data access operation and the beginning of the selected data access operation
- the seek distance is the absolute value of the difference between the cylinder numbers of the two operations.
- the disk controller determines the nominal seek length (in cylinders) for the given latency by referencing nominal seek table 225 (step 802 ). I.e., this is considered the maximum possible seek distance given the available latency.
- step 803 If the nominal (maximum) seek length is less than the seek distance (step 803 ), then it is impossible to complete a seek operation to the target data sector before the rotation of the disk has already moved the target data sector past the head. In this case, the head will have to wait another full revolution before it can read the target data. Therefore, the “Y” branch is taken from step 803 , and the latency is incremented by the number of SIDs in a single full disk revolution (step 804 ). The control program then returns to step 802 to determine the nominal seek length for this new latency value.
- the “N” branch is taken from step 803 .
- a nominal seek time corresponding to the known seek distance is then determined by backward table look up from table 225 (step 805 ).
- the ⁇ SID value is then computed as the difference between the latency and the nominal seek time (step 806 ).
- the ⁇ SID value thus represents the “extra” time that a head would have to wait on the target track, assuming it performs a seek operation within the time allotted by the nominal seek value.
- index value corresponding to the key parameters of the selected data access operation is then obtained from index table 226 (step 807 ). I.e., in the illustrated table of FIG. 4 , the head number, seek direction, operation type, and cylinder range of the target track are used to find the corresponding index value from table 226 .
- the index value obtained in step 807 is then used to reference a profile (row of entries) from probability profile table 227 . From this profile, an expected access factor corresponding to the ⁇ SID value computed in step 806 is determined (step 808 ).
- the Latency was derived at steps 801 , 803 and 804 .
- the remaining part of the formula is derived from the expected access factor, the derivation depending on the form in which the expected access factor is represented in memory.
- the expected access factor could be represented as a simple probability of miss (as shown in FIG. 5 ), in which case the remaining part of the formula is derived by multiplying the expected access factor from the table by the number of SIDs in a single disk revolution.
- the expected access factor be stored in memory as the product of the probability of miss and the number of SIDs in a single disk revolution. In this case, the expected access factor is simply added to the latency to obtain the EAT.
- table 227 might be represented in a “delta expected access time” form, in which a number of SIDs is the independent variable (index to the columns), and expected access factors or probabilities are the dependent variables (values in the rows).
- expected access factor as a pair of values, being number of misses and number of accesses, wherein the probability of miss is computed as the ratio of misses to accesses, and is then multiplied by the number of SIDs in a single disk revolution; although this alternative requires more computation, it allows access miss statistics to be kept on a continuing basis for all disk accesses.
- the controller determines if there are additional access operations in the queue (step 703 ), and if so, returns to step 701 to select another operation and compute its EAT.
- the “N” branch is taken from step 703 .
- the controller then chooses an enqueued operation for execution after the currently executing operation (step 704 ).
- Any of various algorithms which in some way use the EAT values may be used.
- the controller may choose the operation having the lowest EAT value in all cases, and in the case of a tie, may choose the oldest operation in the queue.
- this algorithm may have a tendency to starve certain types of operations. E.g. an operation near the ID of the disk may sit on the queue a long time because the actuator is executing many data access operations nearer the OD having lower EATs.
- An alternative algorithm would establish relative priorities, in which both the EAT and the time in the queue are taken into account by giving a relative weight to each, so that a stale operation with a higher EAT may in some cases be selected. More sophisticated algorithms which take additional factors into account may be used. Examples of such additional factors might be: (a) favor reads over writes; (b) favor operations near the periphery of the disk (ID or OD), because they tend to get neglected; (c) favor maintaining same seek direction as previous seek (to encourage sweeps); (d) favor short ops if buffer nearly full; etc. Finally, although the algorithm described herein looks only at the very next operation, it would be possible to look ahead more than one operation from the currently executing one to find optimal sequences of operations.
- step 705 the controller waits for the current data access to complete. If data access statistics are being kept (in the expansion table 228 or elsewhere), these statistics are updated depending on the result (miss or make) of the current data access operation (step 706 ). This step is illustrated as a dashed box in FIG. 7 , because statistics are not necessarily always being generated.
- the data access operation chosen at step 704 is then dispatched for execution and removed from queue 224 (step 707 ). The controller then returns to step 701 to determine the next operation to be executed.
- tables described above are individually and dynamically calibrated to disk drive 100 . Any of several methods for doing so may be employed, of which two are described herein.
- the values in seek probability profile table 227 are determined by the disk drive designers and are fixed for a particular model of disk drive. I.e., the drive designers experimentally determine a representative sample of probability profiles for inclusion in table 227 . Calibration of the drive then amounts to determining maximum seek length values for nominal seek time table 225 (as described earlier), and determining index values for index table 226 which will point to the appropriate rows in table 227 .
- Determining index values is accomplished by using expansion table 228 .
- a set of key parameter values is temporarily assigned to one of the rows of expansion table 228 , and the ⁇ SID values for the set of key parameters are experimentally determined by collecting data from a sufficient number of data access attempts.
- ⁇ SID values are determined by convergence using a convergence formula for each probability in the table.
- the ⁇ SID value is incremented by 0.25 ⁇ for every attempted data access operation of the set of key parameters which misses (does not complete the seek within the value of ⁇ SID), and is decremented by 0.75 ⁇ for every such data access operation which makes (completes the seek within ⁇ SID), where ⁇ is some artificial unit.
- a similar procedure (with appropriately varying coefficients) is used for each of the other column entries. Over a sufficient number of attempts, the values of ⁇ SID in each column will converge on stable values, which are the experimentally determined values of ⁇ SIDs.
- the artificial unit ⁇ may start out larger and become increasingly smaller for rapid convergence, or may be a constant size.
- ⁇ ultimately becomes the equivalent of less than 1 SID in order to have table convergence.
- the values in expansion table are illustrated as floating point values; however, for ease of computation, these could be integers representing a SID value times a multiplier, and which are divided by the common multiplier after convergence has completed.
- Expansion table 228 has multiple rows to permit the collection of convergence data for multiple key parameter permutations simultaneously, but it is expected that the number of rows in expansion table 228 is less than the number of possible permutations. Therefore, convergence data is collected for the various permutations on a rotating basis, which is not necessarily equal.
- permutations are chosen for expansion in expansion table on the basis of frequency of access. I.e, counts of data access operations actually performed for each permutation are accumulated, and the most frequently performed permutations are updated in the expansion table more often. This may be done according to any of various algorithms, but in simple embodiment, the permutations having the largest counts are chosen for collecting convergence data in the expansion table, the counts for the chosen permutations being reset. It would alternatively be possible to choose permutations for expansion on a round-robin basis or according to other formulae.
- seek probability profile table 227 is also calibrated using operating statistics.
- ⁇ SID values are dynamically determined by convergence in expansion table 228 for various permutations of key parameters.
- experimentally determined values for particular key parameter permutations are entered in the rows of table 227 .
- rows are filled from a representative set of key parameter permutations, the remaining permutations are matched to the filled rows in the same manner as they would have been for pre-filled rows. It is possible to continually adjust the values in the rows on a dynamic basis.
- the drives can be individually calibrated and loaded as part of a manufacturing process, before shipment to the customer.
- Other variations would also be possible.
- disk drive operations unrelated to estimated access time computation and selection of a next operation from the queue have not been described in detail above or shown in the figures.
- a disk drive typically performs multiple concurrently executing tasks, of which selection of an operation from the queue is only one.
- a typical disk drive responds to many different types of commands; responsive behavior may be very complex; exchange of information with the host may require many steps; etc.
- routines executed to implement the illustrated embodiments of the invention are referred to herein as “programs” or “control programs”.
- the programs typically comprise instructions which, when read and executed by one or more processors in the devices or systems in a computer system consistent with the invention, cause those devices or systems to perform the steps necessary to execute steps or generate elements embodying the various aspects of the present invention.
- processors in the devices or systems in a computer system consistent with the invention, cause those devices or systems to perform the steps necessary to execute steps or generate elements embodying the various aspects of the present invention.
- the various embodiments of the invention are capable of being distributed as a program product in a variety of forms, and the invention applies equally regardless of the particular type of signal-bearing media used to actually carry out the distribution.
- signal-bearing media examples include, but are not limited to, recordable type media such as volatile and non-volatile memory devices, floppy disks, hard-disk drives, CD-ROM's, DVD's, magnetic tape, and transmission-type media such as digital and analog communications links, including wireless communications links. Examples of signal-bearing media are illustrated in FIG. 1 as disk surface 102 , in FIG. 2 as ROM 222 .
- a seek profile table accessible using an index table from key parameter permutations might contain values, from which access estimates can be formulated, other than probabilities of miss/make as used in the TREAT algorithm of the preferred embodiment.
- the servo track formatting as described herein is employed in a rotating magnetic rigid disk drive device, in which disks are permanently installed in the drive.
- a formatting could alternatively be used in a removable disk having a rigid or non-rigid substrate and data recorded in tracks on its surface.
- the data recording tracks are concentric. However, as is known in the art, the tracks could also be spiral tracks.
Landscapes
- Moving Of Head For Track Selection And Changing (AREA)
- Signal Processing For Digital Recording And Reproducing (AREA)
- Moving Of The Head To Find And Align With The Track (AREA)
Abstract
Description
Head number: Seek time may vary with the transducer head and corresponding disk surface for any of various reasons. There are individual variations in head flyheight, transducer gain, physical size of the transducer, quality of the recording surface, and so forth, which might affect the amount of time required to settle on a target track to the extent that it can be reliably read or written to.
Seek direction: Due to various forces on the actuator, it may move faster depending on whether the seek is in the inward direction (toward the disk center) or the outward direction (toward the outer edge of the disk).
Radial head position: The actuator may seek faster at certain radial positions or zones than at others, so that a given seek length (in number of tracks) can be accomplished in a varying amount of time, depending on the range of tracks traversed. E.g., a 100-track seek near the inner diameter of the disk may take more time than a 100-track seek near the outer diameter of the disk, which may in turn take more time than a 100-track seek mid-way between the ID and OD. Actuators are generally designed for optimum use near the middle to the OD, so seeks in this range tend to be faster, although this is not necessarily always the case. Speed variations may be due to physical difference in actuator speed, or to the fact that tracks are formatted in such a manner that the number of track crossings per degree of actuator rotation varies across the disk surface, or both. The radial head position may be expressed as the position of the target track, or the initial track, or some other measure.
Drive Temperature: Temperature affects the air viscosity, which may affect the flyheight of the head as well as the air resistance to the actuator. Temperature may also affect lubricant viscosity, mechanical frictional forces and other factors, which may influence seek times.
The list of key parameters above is only one example of parameters which may be used, it being understood that additional parameters may be used, or that it is not necessary to use all of the parameters listed above. In the illustrated index table 226 of
EAT=Latency+(Probability_of_miss*1_Revolution). (1)
The Latency was derived at
Claims (17)
Priority Applications (4)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US10/285,256 US6993624B2 (en) | 2002-10-31 | 2002-10-31 | Method and apparatus for selecting enqueued data access operations for execution in a disk drive data storage device |
JP2003351770A JP2004152468A (en) | 2002-10-31 | 2003-10-10 | Method and apparatus for selecting a standby data access operation for execution in a disk drive data storage device |
SG200306380A SG116509A1 (en) | 2002-10-31 | 2003-10-28 | Method and apparatus for selecting enqueued data aMethod and apparatus for selecting enqueued data access operations for execution in a disk drive datccess operations for execution in a disk drive data storage device. a storage device. |
CNB2003101029475A CN1288634C (en) | 2002-10-31 | 2003-10-30 | Method and device of data access operation for selecting queue in disc memory |
Applications Claiming Priority (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US10/285,256 US6993624B2 (en) | 2002-10-31 | 2002-10-31 | Method and apparatus for selecting enqueued data access operations for execution in a disk drive data storage device |
Publications (2)
Publication Number | Publication Date |
---|---|
US20040088478A1 US20040088478A1 (en) | 2004-05-06 |
US6993624B2 true US6993624B2 (en) | 2006-01-31 |
Family
ID=32175134
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US10/285,256 Expired - Fee Related US6993624B2 (en) | 2002-10-31 | 2002-10-31 | Method and apparatus for selecting enqueued data access operations for execution in a disk drive data storage device |
Country Status (4)
Country | Link |
---|---|
US (1) | US6993624B2 (en) |
JP (1) | JP2004152468A (en) |
CN (1) | CN1288634C (en) |
SG (1) | SG116509A1 (en) |
Cited By (8)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20080010400A1 (en) * | 2006-07-06 | 2008-01-10 | Samsung Electronics Co., Ltd | Method and apparatus for automatically determining optimal access time of hard disk |
US7450334B1 (en) * | 2007-06-28 | 2008-11-11 | Western Digital Technologies, Inc. | Disk drive adjusting predictive caching based on temperature of voice coil motor |
US20080320266A1 (en) * | 2007-06-22 | 2008-12-25 | Levine Frank E | Allocating Disk Space On A Disk Drive |
US20090103522A1 (en) * | 2007-10-19 | 2009-04-23 | Rebelvox, Llc | Telecommunication and multimedia management method and apparatus |
US20090288103A1 (en) * | 2008-05-19 | 2009-11-19 | International Business Machines Corporation | Method and Apparatus for Processing Access Requests for a Disk Drive |
US8090902B1 (en) * | 2009-05-22 | 2012-01-03 | Western Digital Technologies, Inc. | Disk drive adjusting command execution in response to control circuitry die temperature |
US9418689B2 (en) | 2014-10-09 | 2016-08-16 | Western Digital Technologies, Inc. | Data storage device generating an operating seek time profile as a function of a base seek time profile |
US10102030B2 (en) | 2015-10-26 | 2018-10-16 | International Business Machines Corporation | Using 64-bit storage to queue incoming transaction server requests |
Families Citing this family (18)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US6978355B2 (en) * | 2001-11-13 | 2005-12-20 | Seagate Technology Llc | Cache memory transfer during a requested data retrieval operation |
US20040027205A1 (en) * | 2002-08-07 | 2004-02-12 | Fikart Josef Ludvik | Local oscillator apparatus for low-noise generation of arbitrary frequencies |
JP4310140B2 (en) * | 2003-06-25 | 2009-08-05 | 株式会社日立グローバルストレージテクノロジーズ | Magnetic disk unit |
US6987639B1 (en) * | 2003-09-30 | 2006-01-17 | Western Digital Technologies, Inc. | Disk drive modifying a rotational position optimization algorithm based on motor capability of a VCM |
US7849149B2 (en) * | 2004-04-06 | 2010-12-07 | Honda Motor Co., Ltd. | Method and system for controlling the exchange of vehicle related messages |
US7061714B1 (en) | 2003-12-19 | 2006-06-13 | Western Digital Technologies, Inc. | Disk drive modifying estimated seek times for a rotational position optimization algorithm based on change in estimated seek time parameter |
US8108693B2 (en) * | 2005-04-01 | 2012-01-31 | Ged-I Ltd. | Method for data storage protection and encryption |
US8010766B2 (en) * | 2006-10-12 | 2011-08-30 | International Business Machines Corporation | Increasing buffer locality during multiple table access operations |
US7937541B2 (en) * | 2006-10-12 | 2011-05-03 | International Business Machines Corporation | Speed selective table scan operation |
US20080320217A1 (en) * | 2007-06-22 | 2008-12-25 | Levine Frank E | Executing I/O Requests For A Disk Drive |
US7991948B2 (en) * | 2008-01-30 | 2011-08-02 | International Business Machines Corporation | Optimizing execution of I/O requests for a disk drive in a computing system |
CN102263818B (en) * | 2011-07-07 | 2013-06-05 | 北京飞杰信息技术有限公司 | Method for storing and reading file data, and apparatus thereof |
JP5929061B2 (en) * | 2011-09-15 | 2016-06-01 | セイコーエプソン株式会社 | Robot controller, robot system, robot |
JP2018026187A (en) * | 2016-08-09 | 2018-02-15 | 株式会社東芝 | Magnetic disk device and magnetic disk device command reordering method |
JP6972714B2 (en) | 2017-07-04 | 2021-11-24 | 富士通株式会社 | Data acquisition programs, equipment, and methods |
CN109165259B (en) * | 2018-08-27 | 2021-12-21 | 深圳市大迈科技有限公司 | Index table updating method based on network attached storage, processor and storage device |
US11681438B2 (en) * | 2021-05-28 | 2023-06-20 | Dell Products L.P. | Minimizing cost of disk fulfillment |
CN115840541B (en) * | 2023-02-23 | 2023-06-13 | 成都体育学院 | Motion data storage method, system and medium |
Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US5991825A (en) * | 1997-07-11 | 1999-11-23 | International Business Machines Corporation | System for handling missed revolution in a disk drive by aborting the execution of primary command and executing secondary command if a missed revolution occurs |
US6515819B1 (en) * | 1999-03-29 | 2003-02-04 | Maxtor Corporation | Adaptive update of seek time prediction data |
US6763430B1 (en) * | 2000-09-19 | 2004-07-13 | Maxtor Corporation | Automatic acquisition of physical characteristics of a hard drive |
-
2002
- 2002-10-31 US US10/285,256 patent/US6993624B2/en not_active Expired - Fee Related
-
2003
- 2003-10-10 JP JP2003351770A patent/JP2004152468A/en not_active Withdrawn
- 2003-10-28 SG SG200306380A patent/SG116509A1/en unknown
- 2003-10-30 CN CNB2003101029475A patent/CN1288634C/en not_active Expired - Fee Related
Patent Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US5991825A (en) * | 1997-07-11 | 1999-11-23 | International Business Machines Corporation | System for handling missed revolution in a disk drive by aborting the execution of primary command and executing secondary command if a missed revolution occurs |
US6515819B1 (en) * | 1999-03-29 | 2003-02-04 | Maxtor Corporation | Adaptive update of seek time prediction data |
US6763430B1 (en) * | 2000-09-19 | 2004-07-13 | Maxtor Corporation | Automatic acquisition of physical characteristics of a hard drive |
Non-Patent Citations (2)
Title |
---|
U.S. Appl. No. 09/638,253, entitled "Space-Efficient Expected Access Time Algorithm for Hard Disk Drive Command Queue Ordering," filed Aug. 14, 2000, by Espeseth et al. |
U.S. Appl. No. 10/215,403, entitled "Method and System for Efficiently Calculating and Storing Expected Access Time Information for DASD," filed Aug. 8, 2002, by Hall. |
Cited By (10)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20080010400A1 (en) * | 2006-07-06 | 2008-01-10 | Samsung Electronics Co., Ltd | Method and apparatus for automatically determining optimal access time of hard disk |
US20080320266A1 (en) * | 2007-06-22 | 2008-12-25 | Levine Frank E | Allocating Disk Space On A Disk Drive |
US7450334B1 (en) * | 2007-06-28 | 2008-11-11 | Western Digital Technologies, Inc. | Disk drive adjusting predictive caching based on temperature of voice coil motor |
US20090103522A1 (en) * | 2007-10-19 | 2009-04-23 | Rebelvox, Llc | Telecommunication and multimedia management method and apparatus |
US20090288103A1 (en) * | 2008-05-19 | 2009-11-19 | International Business Machines Corporation | Method and Apparatus for Processing Access Requests for a Disk Drive |
US8104047B2 (en) | 2008-05-19 | 2012-01-24 | International Business Machines Corporation | Processing access requests for a disk drive |
US8090902B1 (en) * | 2009-05-22 | 2012-01-03 | Western Digital Technologies, Inc. | Disk drive adjusting command execution in response to control circuitry die temperature |
US9418689B2 (en) | 2014-10-09 | 2016-08-16 | Western Digital Technologies, Inc. | Data storage device generating an operating seek time profile as a function of a base seek time profile |
US10102030B2 (en) | 2015-10-26 | 2018-10-16 | International Business Machines Corporation | Using 64-bit storage to queue incoming transaction server requests |
US10698725B2 (en) | 2015-10-26 | 2020-06-30 | International Business Machines Corporation | Using 64-bit storage to queue incoming transaction server requests |
Also Published As
Publication number | Publication date |
---|---|
CN1499488A (en) | 2004-05-26 |
JP2004152468A (en) | 2004-05-27 |
CN1288634C (en) | 2006-12-06 |
SG116509A1 (en) | 2005-11-28 |
US20040088478A1 (en) | 2004-05-06 |
Similar Documents
Publication | Publication Date | Title |
---|---|---|
US6993624B2 (en) | Method and apparatus for selecting enqueued data access operations for execution in a disk drive data storage device | |
US6925526B2 (en) | Method and apparatus for servicing mixed block size data access operations in a disk drive data storage device | |
US6574754B1 (en) | Self-monitoring storage device using neural networks | |
US6272565B1 (en) | Method, system, and program for reordering a queue of input/output (I/O) commands into buckets defining ranges of consecutive sector numbers in a storage medium and performing iterations of a selection routine to select and I/O command to execute | |
US6775081B2 (en) | Servo format for disk drive data storage devices | |
US6831808B2 (en) | Method and apparatus for determining track identity from abbreviated track identifying data in a disk drive data storage device | |
CN1144219C (en) | Disk drive and head position control method for disk drive | |
CN101930777A (en) | Disk drives and data rewriting methods | |
US7345837B1 (en) | Disk drive that refreshes data on portions of a disk based on a number of write operations thereto | |
WO2002027723A1 (en) | Method to achieve higher track density by allowing only one-sided track encroachment | |
US6728054B2 (en) | Drive with adaptive data format and head switch sequencing | |
US20040148543A1 (en) | Data access control apparatus, data access control method, controller, and computer program | |
US6848019B1 (en) | Performance in a data storage device using head-to-head offsets in access command scheduling | |
US8014095B2 (en) | Mixed format disk drive | |
KR20010053204A (en) | Variable disc drive cylinder recording system | |
US6724562B1 (en) | Segmented constant angle trackpitch | |
CN112053706B (en) | Magnetic disk device | |
US6788489B1 (en) | Employing off-track capability in data access operations in a direct access storage device | |
EP1727133A2 (en) | Method of controlling track seek in HDD and a recording medium therefor | |
US7196862B1 (en) | Coherent phase data segment layout in data storage device | |
US6678106B2 (en) | Determining data sector splits across servo bursts in a disc drive | |
KR100564591B1 (en) | Method and apparatus for compensating torque change in seek servo | |
US7457896B1 (en) | Automated register data transfer to reduce processing burden on a processing device | |
KR950013832B1 (en) | Magnetic disc and magnetic apparatus | |
US7397623B2 (en) | Using a mechanical stop for determining an operating parameter of a data handling device |
Legal Events
Date | Code | Title | Description |
---|---|---|---|
AS | Assignment |
Owner name: INTERNATIONAL BUSINESS MACHINES CORPORATION, NEW Y Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNOR:HALL, DAVID R.;REEL/FRAME:013454/0605 Effective date: 20021031 |
|
AS | Assignment |
Owner name: HITACHI GLOBAL STORAGE TECHNOLOGIES NETHERLANDS B. Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNOR:INTERNATIONAL BUSINESS MACHINES CORPORATION;REEL/FRAME:014193/0695 Effective date: 20031201 |
|
FEPP | Fee payment procedure |
Free format text: PAYOR NUMBER ASSIGNED (ORIGINAL EVENT CODE: ASPN); ENTITY STATUS OF PATENT OWNER: LARGE ENTITY |
|
FEPP | Fee payment procedure |
Free format text: PAYER NUMBER DE-ASSIGNED (ORIGINAL EVENT CODE: RMPN); ENTITY STATUS OF PATENT OWNER: LARGE ENTITY Free format text: PAYOR NUMBER ASSIGNED (ORIGINAL EVENT CODE: ASPN); ENTITY STATUS OF PATENT OWNER: LARGE ENTITY |
|
FPAY | Fee payment |
Year of fee payment: 4 |
|
AS | Assignment |
Owner name: HGST, NETHERLANDS B.V., NETHERLANDS Free format text: CHANGE OF NAME;ASSIGNOR:HGST, NETHERLANDS B.V.;REEL/FRAME:029341/0777 Effective date: 20120723 Owner name: HGST NETHERLANDS B.V., NETHERLANDS Free format text: CHANGE OF NAME;ASSIGNOR:HITACHI GLOBAL STORAGE TECHNOLOGIES NETHERLANDS B.V.;REEL/FRAME:029341/0777 Effective date: 20120723 |
|
FPAY | Fee payment |
Year of fee payment: 8 |
|
AS | Assignment |
Owner name: WESTERN DIGITAL TECHNOLOGIES, INC., CALIFORNIA Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNOR:HGST NETHERLANDS B.V.;REEL/FRAME:040820/0802 Effective date: 20160831 |
|
FEPP | Fee payment procedure |
Free format text: MAINTENANCE FEE REMINDER MAILED (ORIGINAL EVENT CODE: REM.) |
|
LAPS | Lapse for failure to pay maintenance fees |
Free format text: PATENT EXPIRED FOR FAILURE TO PAY MAINTENANCE FEES (ORIGINAL EVENT CODE: EXP.) |
|
STCH | Information on status: patent discontinuation |
Free format text: PATENT EXPIRED DUE TO NONPAYMENT OF MAINTENANCE FEES UNDER 37 CFR 1.362 |
|
FP | Lapsed due to failure to pay maintenance fee |
Effective date: 20180131 |